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1.
Sustainability ; 14(21):14376, 2022.
Article in English | MDPI | ID: covidwho-2099796

ABSTRACT

Lately, the interest in researching microplastics in the Black Sea has increased, highlighting areas of accumulation in which the amounts of microplastics are alarming, such as seafood consumed by the population. The Black Sea has special characteristics in terms of currents and wave dynamics that create opportunities for the accumulation of microplastics in hotspot points, such as in the context of large rivers discharge that contains large amounts of pollutants and new sources of contamination. This article offers a literature-based profile on plastic pollution in the Black Sea-pollution that originates in the discharge of large rivers, transportation, and other economic activities, even the COVID-19 pandemic-in order to highlight 'microplastic hotspots';before the current political crisis that directly involves the Black Sea worsens.

2.
Microsc Res Tech ; 85(5): 1976-1989, 2022 May.
Article in English | MEDLINE | ID: covidwho-1568138

ABSTRACT

Electron microscope (EM) was developed in 1931 and since then microscopical examination of both the biological and non-biological samples has been revolutionized. Modifications in electron microscopy techniques, such as scanning EM and transmission EM, have widened their applicability in the various sectors such as understanding of drug toxicity, development of mechanism, criminal site investigation, and characterization of the nano-molecule. The present review summarizes its role in important aspects such as toxicity assessment and disease diagnosis in special reference to SARS-COV2. In the biological system, EM studies have elucidated the impact of toxicants at the ultra-structural level in various tissue in conformity to physiological alterations. Thus, EM can be concluded as an important tool in toxicity assessment and disease prognosis.


Subject(s)
COVID-19 , RNA, Viral , Humans , Microscopy, Electron , Microscopy, Electron, Scanning , SARS-CoV-2
3.
Applied Sciences ; 11(21):10478, 2021.
Article in English | MDPI | ID: covidwho-1512082

ABSTRACT

Xenobiotic Triclosan (TCS) is of great concern because of its existence in a variety of personal, household and healthcare products and continuous discharge in water worldwide. Excessive use of TCS-containing sanitizers and antiseptic products during the COVID-19 pandemic further increased its content in aquatic ecosystems. The present study deals with the cyto-genotoxic effects and biochemical alterations in the hatchlings of Labeo rohita on exposure to environmentally relevant concentrations of TCS. Three-days-old hatchlings were exposed to tap water, acetone (solvent control) and 4 environmentally relevant concentrations (6.3, 12.6, 25.2 and 60 µg/L) of TCS for 14 days and kept for a recovery period of 10 days. The significant concentration-dependent decline in cell viability but increase in micronucleated cells, nucleo-cellular abnormalities (NCAs) and DNA damage parameters like tail length, tail moment, olive tail moment and percent of tail DNA after exposure persisted till the end of recovery period. Glucose, triglycerides, cholesterol, total protein, albumin, total bilirubin, uric acid and urea (except for an increase at 60 µg/L) showed significant (p ≤ 0.05) concentration-dependent decrease after 14 days of exposure. The same trend (except for triglycerides, albumin and total bilirubin) continued till 10 days post exposure. In comparison to control, transaminases (alanine and aspartate aminotransferases) increased (p ≤ 0.05) after exposure as well as the recovery period, while a decline in alkaline phosphatase after exposure was followed by a significant increase during the recovery period. The results show that the environmentally relevant concentrations of TCS cause deleterious effects on the hatchlings of L. rohita.

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